Redundancy, antiredundancy, and the robustness of genomes
Open Access
- 29 January 2002
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 99 (3) , 1405-1409
- https://doi.org/10.1073/pnas.032668599
Abstract
Genetic mutations that lead to undetectable or minimal changes in phenotypes are said to reveal redundant functions. Redundancy is common among phenotypes of higher organisms that experience low mutation rates and small population sizes. Redundancy is less common among organisms with high mutation rates and large populations, or among the rapidly dividing cells of multicellular organisms. In these cases, one even observes the opposite tendency: a hypersensitivity to mutation, which we refer to as antiredundancy. In this paper we analyze the evolutionary dynamics of redundancy and antiredundancy. Assuming a cost of redundancy, we find that large populations will evolve antiredundant mechanisms for removing mutants and thereby bolster the robustness of wild-type genomes; whereas small populations will evolve redundancy to ensure that all individuals have a high chance of survival. We propose that antiredundancy is as important for developmental robustness as redundancy, and is an essential mechanism for ensuring tissue-level stability in complex multicellular organisms. We suggest that antiredundancy deserves greater attention in relation to cancer, mitochondrial disease, and virus infection.Keywords
This publication has 58 references indexed in Scilit:
- POLYPLOID INCIDENCE AND EVOLUTIONAnnual Review of Genetics, 2000
- Robustness as an evolutionary principleProceedings Of The Royal Society B-Biological Sciences, 2000
- Dosage, Deletions and Dominance: Simple Models of the Evolution of Gene ExpressionJournal of Theoretical Biology, 2000
- Canalization in evolutionary genetics: a stabilizing theory?BioEssays, 2000
- Evolutionary preservation of redundant duplicated genesSeminars in Cell & Developmental Biology, 1999
- Population Evolution on a Multiplicative Single-Peak Fitness LandscapeJournal of Theoretical Biology, 1996
- Levels of selection, evolution of sex in RNA viruses, and the origin of lifeJournal of Theoretical Biology, 1991
- Drosophila abl and genetic redundancy in signal transductionTrends in Genetics, 1991
- Evolution of sex in RNA virusesJournal of Theoretical Biology, 1988
- Repair of DNA in mammalian cellsLife Sciences, 1974